Modern Defense Technology ›› 2022, Vol. 50 ›› Issue (4): 17-27.DOI: 10.3969/j.issn.1009-086x.2022.04.003
• AIR SPACE DEFENSE SYSTEM AND WEAPON • Previous Articles Next Articles
Hai-wei GUO1,2, Yuan LI1, Sheng-hui MAO1
Received:
2022-01-04
Revised:
2022-03-14
Online:
2022-08-28
Published:
2022-09-02
作者简介:
郭海伟(1982-),男,河南郑州人。副教授,博士,研究方向为复合材料结构设计,轻量化设计,机电一体化设备。
CLC Number:
Hai-wei GUO, Yuan LI, Sheng-hui MAO. Research Progress of Electromagnetic Shielding Shelter Technology[J]. Modern Defense Technology, 2022, 50(4): 17-27.
郭海伟, 李源, 毛胜辉. 方舱电磁屏蔽技术研究进展[J]. 现代防御技术, 2022, 50(4): 17-27.
屏蔽 类型 | 频率范围 | 泄露耦合 结构 | 控制要素 |
---|---|---|---|
电场 屏蔽 | 1 MHz~0.5 GHz | 受扰体壳体及接地 | 合理选择受扰体壳体材料、保持壳体的良好接地 |
磁场 屏蔽 | 10 kHz~0.5 MHz | 受扰体壳体 | 合理选择受扰体壳体材料 |
电磁场屏蔽 | 0.5~40 GHz | 孔缝及接地 | 抑制孔缝泄露、保持壳体的良好接地 |
Table 1 Frequency range and suppression elements of three shielding types
屏蔽 类型 | 频率范围 | 泄露耦合 结构 | 控制要素 |
---|---|---|---|
电场 屏蔽 | 1 MHz~0.5 GHz | 受扰体壳体及接地 | 合理选择受扰体壳体材料、保持壳体的良好接地 |
磁场 屏蔽 | 10 kHz~0.5 MHz | 受扰体壳体 | 合理选择受扰体壳体材料 |
电磁场屏蔽 | 0.5~40 GHz | 孔缝及接地 | 抑制孔缝泄露、保持壳体的良好接地 |
屏蔽等级 | 频率范围 | 屏蔽效能/dB |
---|---|---|
Ⅰ | 0.09 MHz~18 GHz | 60 |
Ⅱ | 0.10 MHz~10 GHz | 60 |
Ⅲ | 0.10 MHz~10 GHz | 40 |
Table 2 Shelter electromagnetic shielding effectiveness level
屏蔽等级 | 频率范围 | 屏蔽效能/dB |
---|---|---|
Ⅰ | 0.09 MHz~18 GHz | 60 |
Ⅱ | 0.10 MHz~10 GHz | 60 |
Ⅲ | 0.10 MHz~10 GHz | 40 |
材料 | 相对铜的电导率σr(Cu=5.8×107Ω·m) | f=0.15 MHz时的相对磁导率μr | f=0.15 MHz时的吸收损耗/(dB·m-1) |
---|---|---|---|
银 | 1.05 | 1 | 52 |
铜 | 1.00 | 1 | 51 |
金 | 0.70 | 1 | 42 |
铝 | 0.61 | 1 | 40 |
锌 | 0.29 | 1 | 28 |
镉 | 0.23 | 1 | 24 |
镍 | 0.20 | 1 | 23 |
铁 | 0.17 | 1 000 | 650 |
坡莫合金 | 0.03 | 80 000 | 2 500 |
不锈钢 | 0.02 | 1 000 | 220 |
Table 3 Shielding properties of common metal materials
材料 | 相对铜的电导率σr(Cu=5.8×107Ω·m) | f=0.15 MHz时的相对磁导率μr | f=0.15 MHz时的吸收损耗/(dB·m-1) |
---|---|---|---|
银 | 1.05 | 1 | 52 |
铜 | 1.00 | 1 | 51 |
金 | 0.70 | 1 | 42 |
铝 | 0.61 | 1 | 40 |
锌 | 0.29 | 1 | 28 |
镉 | 0.23 | 1 | 24 |
镍 | 0.20 | 1 | 23 |
铁 | 0.17 | 1 000 | 650 |
坡莫合金 | 0.03 | 80 000 | 2 500 |
不锈钢 | 0.02 | 1 000 | 220 |
1 | Gu Ki-bum, Jae-wook Kwon, Crimsik. A Study on Searching Stabled EMI Shielding Effectiveness Measurement Point for Military Communication Shelter Using Support Vector Machine and Process Capability Analysis[J]. Journal of the Korea Academia-Industrial Cooperation Society, 2019, 20(2): 321-328. |
2 | THRALL A P, QUAGLIA C P. Accordion Shelters: A Historical Review of Origami-Like Deployable Shelters Developed by the US Military[J]. Engineering Structures, 2014, 59: 686-692. |
3 | Anonymous. Weatherhaven Chooses Analytic Systems to Provide Mil-Spec Battery Chargers for Canadian Military Vehicle Shelters[J]. Military & Aerospace Electronics, 2012, 23(9): 34-35. |
4 | 何金迎,李晓燕,甄建军,等 .复合材料防弹防爆方舱技术发展现状[J].兵器装备工程学报,2018, 39(10):138-143. |
HE Jin-ying, LI Xiao-yan, ZHEN Jian-jun, et al. Development Status of Composite Bulletproof and Explosion Proof Shelter Technology[J]. Journal of Ordnance Equipment Engineering, 2018, 39(10): 138-143. | |
5 | Military and Defense; New Military and Defense Study Findings Reported from Ourense (Development of a Transient Model of a Lightweight, Portable and Flexible Air-Based PV-T Module for UAV Shelter Hangars)[J]. Defense & Aerospace Week, 2020. |
6 | WANG Sen, QIU Yang, TIAN Jin. Research on Shielding Effectiveness Test of Bulkhead in a Compartment Shelter[J]. IEEE Transactions on Electromagnetic Compatibility, 2019, 61(1): 309-312. |
7 | 张海旭,王浩轩.信息系统的电磁泄漏及其防护技术的研究[J].通讯世界,2019,26(7):26-27. |
ZHANG Hai-xu, WANG Hao-xuan. Research on Electromagnetic Leakage of Information System and Its Protection Technology [J]. Communication World, 2019, 26 (7): 26-27. | |
8 | 范礼辉,景元辉,熊田田.某型方舱电站的电磁屏蔽设计与实现[J].移动电源与车辆,2020(3):13-17,36. |
FAN Li-hui, JING Yuan-hui, XIONG Tian-tian. Design and Implementation of Electromagnetic Shielding for a Shelter Power Station [J]. Mobile Power Supply and Vehicle, 2020(3): 13-17,36. | |
9 | 张俊,张换换.电磁屏蔽方舱质量控制要点研究[J].科技创新导报,2019,16(9):91-92. |
ZHANG Jun, ZHANG Huan-huan. Research on Key Points of Quality Control of Electromagnetic Shielding Shelter [J]. Science and Technology Innovation Guide, 2019, 16(9): 91-92. | |
10 | 郭浩,张部生,宝国辉,等.电磁屏蔽舱门优化设计[J].舰船电子工程,2014,34(2): 171-173. |
GUO Hao, ZHANG Bu-sheng, BAO Guo-hui, et al. Optimal Design of Electromagnetic Shielding Cabin Door[J]. Ship Electronic Engineering, 2014,34 (2): 171-173. | |
11 | 王屹炜,张海涛,于东旭,等. 基于场仿真的方舱电磁屏蔽设计[J].电子技术与软件工程,2020(15):123-124. |
WANG Yi-wei, ZHANG Hai-tao, YU Dong-xu, et al. Electromagnetic Shielding Design of Shelter Based on Field Simulation [J]. Electronic Technology and Software Engineering, 2020 (15): 123-124. | |
12 | 刘兵.某型电站方舱的电磁屏蔽设计[J].移动电源与车辆,2019(4): 12-14. |
LIU Bing. Electromagnetic Shielding Design of a Power Station Shelter[J]. Mobile Power Supply and Vehicle, 2019(4): 12-14. | |
13 | 沈健,周文君,张德磊,等. 基于某型方舱车的优化电磁设计仿真[J]. 新技术新工艺,2020(10):47-49. |
SHEN Jian, ZHOU Wen-jun, ZHANG De-lei, et al. Simulation of Optimal Electromagnetic Design Based on a Certain Type of Shelter Vehicle[J]. New Technology and New Process, 2020(10): 47-49. | |
14 | 段玉康.方舱电磁屏蔽技术研究[D].成都:电子科技大学,2009. |
DUAN Yu-kang. Research on Shelter Electromagnetic Shielding Technology[D]. Chengdu:University of Electronic Science and Technology of China, 2009. | |
15 | 和婷,李乔.浅析电磁屏蔽技术在电子方舱中的应用[J].新技术新工艺,2013(6):121-123. |
HE Ting, LI Qiao. Application of Electromagnetic Shielding Technology in Electronic Shelter[J]. New Technology and New Process, 2013(6): 121-123. | |
16 | ANTONETS I V, GOLUBEV Y A, SHCHEGLOV V I . et al. Electromagnetic Shielding Effectiveness of Lightweight and Flexible Ultrathin Shungite Plates[J]. Current Applied Physics, 2021, 29(1): 97-106. |
17 | PAKDEL E, KASHI S, BAUM T,et al. Carbon Fibre Waste Recycling Into Hybrid Nonwovens for Electromagnetic Interference Shielding and Sound Absorption[J]. Journal of Cleaner Production, 2021, 315(7):128196. |
18 | ORABY H, NAEEM I, DARWISH M, et al. Effective Electromagnetic Interference Shielding Using Foamy Polyurethane Composites[J]. Polymer Composites, 2021, 42(6): 3077-3088. |
19 | 施建花.电磁屏蔽原理及应用[J].现代经济信息,2015(24):304. |
SHI Jian-hua. Principle and Application of Electromagnetic Shielding[J]. Modern Economic Information, 2015 (24): 304. | |
20 | WANG Hong-yu, ZHU Dong-mei, WANG Xiu-feng,et al. Influence of Silicon Carbide Fiber (SiCf) Type on the Electromagnetic Microwave Absorbing Properties of SiCf/Epoxy Composites[J]. Composites Part A: Applied Science and Manufacturing,2017,93:10-17. |
21 | GAO Yuan, GAO Xiao-yan, LI Jiang, et al. Improved Microwave Absorbing Property Provided by the Filler's Alternating Lamellar Distribution of Carbon Nanotube/Carbonyl Iron/Poly (Vinyl Chloride) Composites[J]. Composites Science and Technology,2018(12),158(12): 175-185. |
22 | HE Ting, TANG Hong-xia, Kang LÜ, et al. Electromagnetic Shielding Technology Applications in the Electronics Shelter[J]. Advanced Materials Research, 2014, 945-949: 2254-2257. |
23 | ZHANG Wei-liang, WAN Jun-lin, ZHANG Qi. Electromagnetic Shielding Design of Transfer Orifice for Military Shelter[J]. Journal of Physics: Conference Series,2021, 1885(5): 052020. |
24 | Electromagnetic Research; Recent Findings in Electromagnetic Research Described by Researchers from Xidian University (Research on Shielding Effectiveness Test of Bulkhead In a Compartment Shelter)[J]. Electronics Newsweekly, 2019, 778. |
25 | HUANG Peng, LIU Zhi-guo, QI Jian-cheng. Simulation Analysis of Electromagnetic Shielding Effectiveness in Ventilation Window of Waveguide[J]. Journal of Simulation, 2017, 5(2):93-98. |
26 | 温浩,高治国,王小东.电子设备方舱电磁屏蔽技术的研究[J].专用汽车,2011(7):78-80. |
WEN HAO, GAO Zhi-guo, WANG Xiao-dong. Research on Electromagnetic Shielding Technology of Electronic Equipment Shelter[J]. Special Purpose Vehicle, 2011 (7): 78-80. | |
27 | , 军用方舱通用规范 [S]. |
, General Specification for Military Shelter [S]. | |
28 | 崔麦苗,鲁锋涛,何天洋,等. 电磁屏蔽方舱的设计[J].装备制造技术,2017(1):64-66. |
CUI Mai-miao, LU Feng-tao, HE Tian-yang, et al. Design of Electromagnetic Shielding Shelter[J]. Equipment Manufacturing Technology, 2017(1):64-66. | |
29 | 曹宇佳, 李志久. 电磁屏蔽方舱质量控制要点分析[J]. 汽车世界,2020(13):64. |
CAO Yu-jia, LI Zhi-jiu. Analysis on Key Points of Quality Control of Electromagnetic Shielding Shelter[J]. Automotive World, 2020(13): 64. | |
30 | 陆颖健,严明,高屹.电磁屏蔽材料的屏蔽机理及现状分析[J].价值工程,2019,38(1):159-162. |
LU Ying-jian, YAN Ming, GAO Yi. Shielding Mechanism and Current Situation Analysis of Electromagnetic Shielding Materials[J]. Value Engineering, 2019, 38 (1): 159-162. | |
31 | KUANG Tai-rong, CHANG Ling-qian, CHEN Feng, et al. Facile Preparation of Lightweight High-Strength Biodegradable Polymer/Multi-Walled Carbon Nanotubes Nanocomposite Foams for Electromagnetic Interference Shielding[J]. Carbon, 2016, 105:305-313. |
32 | RAO B V B, CHENGAPPA M, KALE S N. Lightweight, Flexible and Thin Fe3O4-Loaded, Functionalized Multi Walled Carbon Nanotube Buckypapers for Enhanced X-band Electromagnetic Interference Shielding[J]. Materials Research Express, 2017, 4(4): 045012. |
33 | AGRAWAL R, SHAH J, GUPTA G, et al. Significantly High Electromagnetic Shielding Effectiveness in Polypyrrole Synthesized by Eco‐Friendly and Cost-Effective Technique[J]. Journal of Applied Polymer Science, 2020,137(48):49566. |
34 | 宋斌,黄月文,祖伟皓,等.电磁屏蔽材料的研究进展[J]. 广州化学,2021,46(1):1-7. |
SONG bin, HUANG Yue-wen, ZU Wei-hao, et al. Research Progress of Electromagnetic Shielding Materials[J]. Guangzhou Chemical, 2021, 46(1): 1-7. | |
35 | GALVIS L W E, DIAZ-MONTIEL P, VENKATARAMAN S. Optimal Electrode Selection for Electrical Resistance Tomography in Carbon Fiber Reinforced Polymer Composites[J]. Materials, 2017, 10(2): 125-140. |
36 | AAL N A, EL‐TANTAWY F, AL‐HAJRY A, et al. New Antistatic Charge and Electromagnetic Shielding Effectiveness from Conductive Epoxy Resin/Plasticized Carbon Black Composites[J]. Polymer Composites, 2008, 29(2): 125-132. |
37 | AL-SALEH M H, SUNDARARAJ U. X-Band EMI Shielding Mechanisms and Shielding Effectiveness of High Structure Carbon Black/Polypropylene Composites[J]. Journal of Physics D: Applied Physics, 2012, 46(3): 035304. |
38 | MAHAPATRA S P, SRIDHAR V, TRIPATHY D K. Impedance Analysis and Electromagnetic Interference Shielding Effectiveness of Conductive Carbon Black Reinforced Microcellular EPDM Rubber Vulcanizates[J]. Polymer Composites, 2008, 29(5): 465-472. |
39 | SAU K P, CHAKI T K, CHAKRABORTY A, et al. Electromagnetic Interference Shielding by Carbon Black and Carbon Fibre Filled Rubber Composites[J]. Plastics Rubber and Composites Processing and Applications, 1997, 26(7): 291-297. |
40 | DAS N C, CHAKI T K, KHASTGIR D, et al. Electromagnetic Interference Shielding Effectiveness of Conductive Carbon Black and Carbon Fiber‐Filled Composites Based on Rubber and Rubber Blends[J]. Advances in Polymer Technology, 2001, 20(3): 226-236. |
41 | HART R J. Electrical Resistance Based Damage Modeling of Multifunctional Carbon Fiber Reinforced Polymer Matrix Composites[D]. Iowa:University of Iowa,2017. |
42 | MIZUKAMI K, WATANABE Y.A Simple Inverse Analysis Method for Eddy Current-Based Measurement of Through-Thickness Conductivity of Carbon Fiber Composites[J]. Polymer Testing, 2018, 69:320-324. |
43 | NONN S, SCHAGERL M, ZHAO Ying-jun, et al. Application of Electrical Impedance Tomography to an Anisotropic Carbon Fibre-Rein-Forced Polymer Composite Laminate for Damage Localization[J]. Composites Science& Technology, 2018, 160(26):231-236. |
44 | 闫丽丽, 乔妙杰, 雷忆三,等. 化学镀镍碳纤维/环氧树脂复合材料电磁屏蔽性能[J]. 复合材料学报, 2013,30(2):44-49. |
YAN Li-li, QIAO Miao-jie, LEI Yi-san, et al. Electromagnetic Shielding Properties of Electroless Nickel Plated Carbon Fiber/Epoxy Resin Composites[J]. Journal of Composites, 2013,30(2): 44-49. | |
45 | 王畅, 纪长松, 岳建岭,等. 铁镍磁性涂层碳纤维软磁性能及电磁屏蔽效能的研究[J]. 表面技术, 2018, 47(6):174-180. |
WANG Chang, JI Chang-song, YUE Jian-ling, et al. Study on Soft Magnetic Properties and Electromagnetic Shielding Effectiveness of Iron Nickel Magnetic Coated Carbon Fiber[J]. Surface Technology, 2018, 47(6): 174-180. | |
46 | 何晖宇, 郭锐, 唐亚玲,等. 碳纤维/木质素基酚醛树脂复合材料的电磁屏蔽性能研究[J]. 材料科学, 2018, 8(1):21-28. |
HE Hui-yu, GUO Rui, TANG Ya-ling, et al. Study on Electromagnetic Shielding Properties of Carbon Fiber/Lignin Based Phenolic Resin Composites[J]. Materials Science, 2018, 8(1): 21-28. | |
47 | 张建东, 王富强, 苏青林,等. 镀镍碳纤维-芳纶纤维增强复合材料性能研究[J]. 高科技纤维与应用, 2018, 43(2):32-35. |
ZHANG Jian-dong, WANG Fu-qiang, SU Qing-lin, et al. Study on Properties of Nickel Plated Carbon Fiber Aramid Fiber Reinforced Composites[J]. High Tech Fibers and Applications, 2018, 43(2): 32-35. | |
48 | 徐青,李庆华,胡思霞. 含掺杂剂的EPS 多孔水泥基材料电磁屏蔽性能研究[J]. 华东交通大学学报, 2017, 34(1):132-137. |
XU Qing, LI Qing-hua, HU Si-xia, et al. Study on Electromagnetic Shielding Properties of EPS Porous Cement-Based Materials Containing Dopants[J]. Journal of East China Jiaotong University, 2017, 34(1): 132-137. | |
49 | LEE S H, KANG D, OH I K . Multilayered Graphene-Carbon Nanotube-Iron Oxide Three-Dimensional Heterostructure for Flexible Electromagnetic Interference Shielding Film[J]. Carbon, 2017, 111: 248-257. |
50 | WU Jian-ming, CHEN Juan, ZHAO Yue-ying,et al . Effect of Electrophoretic Condition on the Electromagnetic Interference Shielding Performance of Reduced Graphene Oxide-Carbon Fiber/Epoxy Resin Composites[J]. Composites Part B, 2016, 105: 167-175. |
51 | YU Wan-cheng, XU Jia-zhuang, WANG Zhi-guo,et al . Constructing Highly Oriented Segregated Structure Towards High-Strength Carbon Nanotube /Ultra-High-Molecular-Weight Polyethylene Composites for Electromagnetic Interference Shielding[J]. Composites Part A, 2018, 110: 237-245. |
52 | MAO Yun, ZHANG Sheng-qi, WANG Wei,et al. Electroless Silver Plated Flexible Graphite Felt Prepared by Dopamine Functionalization and Applied for Electromagnetic Interference Shielding[J]. Colloids & Surfaces A: Phys. Eng. Asp, 2018, 558: 538-547. |
53 | LIU Yuan-jun, LIU Bao-cheng, ZHAO Xiao-ming. The Influence of the Type and Concentration of Oxidants on the Dielectric Constant of the Polypyrrole-Coated Plain Woven Cotton Fabric[J]. Journal of the Textile Institute, 2018, 109(9):1127-1132. |
54 | 王雪娇, 杨向璟, 温变英. 聚乙烯醇缩丁醛/镀镍石墨复合材料薄膜的电磁屏蔽性能及机理[J]. 高分子材料科学与工程, 2019, 35(5):51-56. |
WANG Xue-jiao, YANG Xiang-jing, WEN Bian-ying. Electromagnetic Shielding Properties and Mechanism of Polyvinyl Butyral/Nickel Plated Graphite Composite Films[J]. Polymer Materials Science and Engineering, 2019, 35 (5): 51-56. | |
55 | 狄莹莹, 石艳飞, 任鹏刚. 石墨烯-羰基铁/氰酸酯复合材料的制备及电磁屏蔽性能[J]. 高分子材料科学与工程, 2019, 35(6):111-116. |
DI Ying-ying, SHI Yan-fei, REN peng-gang. Preparation and Electromagnetic Shielding Properties of Graphene Carbonyl Iron/Cyanate Ester Composites[J]. Polymer Materials Science and Engineering, 2019, 35(6): 111-116. | |
56 | 蔡泽, 张丰发, 布和巴特尔, 等. 三维结构铁氧体/碳复合材料制备及其电磁波吸收特性[J]. 化学工程师, 2020, 34(11):18-21. |
CAI Ze, ZHANG Feng-fa, BUHE Bartel, et al. Preparation and Electromagnetic Wave Absorption Characteristics of Three-Dimensional Ferrite/Carbon Composites[J]. Chemical Engineer, 2020, 34(11): 18-21. | |
57 | SAINI P, ARORA M, GUPTA G, et al. High Permittivity Polyaniline-Barium Titanate Nanocomposites With Excellent Electromagnetic Interference Shielding Response[J]. Nanoscale, 2013, 5(10): 4330-4336. |
58 | DEY C C, MALLICK A, MAHAPATRA A S, et al. Electromagnetic-Wave Shielding Promulgation of Cluster Like FZ@MWCNT Composite Incorporated in GO Matrices by Polarization Relaxation and Potential Degradation[J]. Materials Characterization, 2021, 172: 110884. |
59 | 周子滢, 段茹雪, 刘宁娟,等. 碳纳米管涂层双罗纹织物的电磁屏蔽性能[J]. 现代纺织技术, 2021, 29(4):43-50. |
ZHOU Zi-ying, DUAN Ru-xue, LIU ning-juan, et al. Electromagnetic Shielding Properties of Carbon Nanotube Coated Double Rib Fabric[J]. Modern Textile Technology, 2021, 29(4): 43-50. | |
60 | 秦文峰, 符佳伟, 王新远,等. 多壁碳纳米管导电纸/碳纤维复合材料的制备及电磁屏蔽性能研究[J]. 化工新型材料, 2020, 48(9):68-71. |
QIN Wen-feng, FU Jia-wei, WANG Xin-yuan, et al. Preparation and Electromagnetic Shielding Properties of Multi Wall Carbon Nanotube Conductive Paper/Carbon Fiber Composites[J]. New Chemical Materials, 2020, 48(9): 68-71. | |
61 | 余正萍. 多壁碳纳米管/聚乙烯醇复合材料电磁屏蔽性能研究[J]. 化工新型材料, 2020, 48(3):55-59. |
YU Zheng-ping. Study on Electromagnetic Shielding Properties of Multi Walled Carbon Nanotubes/Polyvinyl Alcohol Composites[J]. New Chemical Materials, 2020, 48 (3): 55-59. | |
62 | 李建, 吴维翔, 武红元,等. 隔离结构碳纳米管/聚丙烯电磁屏蔽复合材料[J]. 塑料, 2020, 49(5):8-12. |
LI Jian, WU Wei-xiang, WU Hong-yuan, et al. Isolation Structure Carbon Nanotube/Polypropylene Electromagnetic Shielding Composite[J]. Plastics, 2020, 49 (5): 8-12. | |
63 | 刘伟, 王东红, 贾琨,等. 石墨烯/碳纳米管/纤维素纸复合材料的制备及电磁屏蔽性能研究[J]. 化工新型材料, 2020, 48(1):80-84. |
LIU Wei, WANG Dong-hong, JIA Kun, et al. Preparation and Electromagnetic Shielding Properties of Graphene/Carbon Nanotube/Cellulose Paper Composites[J]. New Chemical Materials, 2020, 48 (1): 80-84. | |
64 | PHAN C H, MARIATTI M, KOH Y H.Electromagnetic Interference Shielding Performance of Epoxy Composites Filled With Multiwalled Carbon Nanotubes/Manganese Zinc Ferrite Hybrid Fillers[J].Journal of Magnetism and Magnetic Materials, 2016, 401: 472-478. |
65 | 刘琳, 张东. 电磁屏蔽材料的研究进展[J]. 功能材料,2015,46(3):3016-3022. |
LIU Lin, ZHANG Dong. Research Progress of Electromagnetic Shielding Materials[J]. Functional Materials, 2015,46 (3): 3016-3022. | |
66 | 张坤. 军用电磁屏蔽方舱电磁屏蔽效能测试研究[D]. 西安:西安电子科技大学,2011. |
ZHANG Kun. Research on Electromagnetic Shielding Effectiveness Test of Military Electromagnetic Shielding Shelter[D]. Xi'an:Xidian University, 2011. | |
67 | 张建成. 实装屏蔽方舱屏蔽效能测试方法研究[D].西安:西安电子科技大学,2021. |
ZHANG Jian-cheng. Research on the Test Method of Shielding Effectiveness of Real Shielding Shelter[D]. Xi’an: Xidian University, 2021. | |
68 | 赵磊.GJB 6785-2009对军用电子设备方舱屏蔽效能测试的要求[J].安全与电磁兼容,2009(6):26-29,52. |
ZHAO Lei. GJB 6785-2009 Requirements for Shielding Effectiveness Test of Military Electronic Equipment Shelter[J]. Safety & EMC, 2009(6):26-29,52. | |
69 | 蒋全兴, 周忠元, 景莘慧,等. 电磁防护材料性能的评价方法[J]. 安全与电磁兼容, 2011(3): 9-13. |
JIANG Quan-xing, ZHOU Zhong-yuan, JING Xin-hui, et al. Evaluation Method of Electromagnetic Protective Materials[J]. Safety and Electromagnetic Compatibi-lity, 2011(3): 9-13. |
[1] | Wan-li ZHENG, Ping YANG, Shao-qiang YAN, Feng-xuan WU, Song YAN. Analysis on the Research Status and Development Trend of Military Camouflage Technology [J]. Modern Defense Technology, 2022, 50(1): 81-86. |
Viewed | ||||||||||||||||||||||||||||||||||||||||||||||||||
Full text 2065
|
|
|||||||||||||||||||||||||||||||||||||||||||||||||
Abstract 11865
|
|
|||||||||||||||||||||||||||||||||||||||||||||||||